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可调谐离子输运的聚合物纳流控体系中的三角形纳米通道。

Tunable ionic transport for a triangular nanochannel in a polymeric nanofluidic system.

机构信息

Department of Mechanical Engineering, Pohang University of Science and Technology, San 31, Pohang, Gyeongbuk, Korea.

出版信息

ACS Nano. 2013 Jan 22;7(1):740-7. doi: 10.1021/nn3050424. Epub 2012 Dec 17.

Abstract

Recently, tremendous engineering applications utilizing new physics of nanoscale electrokinetics have been reported and their basic fundamentals are actively researched. In this work, we first report a simple and economic but reliable nanochannel fabrication technique, leading to a heterogeneously charged triangular nanochannel. The nanochannel utilized the elasticity of PDMS when it bonded with a micrometer-scale structure on a substrate. Second, we successfully demonstrated novel ionic transportations by tweaking the micrometer structures: (1) the transition of nonlinear ionic conductance depending on the nanochannel properties and (2) the ionic field-effect transistor. Nanochannel conductance has two distinguishable nonlinear regimes called the "surface-charge-governed" and the "geometry-governed" regime and its only individual overlooks were frequently reported. However, the transition between two regimes by adjusting nanochannel properties has not been reported due to the difficulty of functional nanochannel fabrication. In addition, a gate voltage was comfortably applied to the triangular nanochannel so that the field-effect ion transportation was reliably achieved. Therefore, presenting triangular nanochannels have critical advantages over its heterogeneous and tunable surface properties and thus, could be an effective means as an active fundamental to control and manipulate the ion-electromigration through a nanofluidic system.

摘要

最近,大量利用纳米尺度电动学新物理的工程应用已经被报道,并且其基础原理也正在被积极研究。在这项工作中,我们首先报告了一种简单、经济但可靠的纳米通道制造技术,该技术导致了异质带电的三角形纳米通道。该纳米通道利用 PDMS 的弹性,在与基底上的微米级结构结合时形成纳米通道。其次,我们通过调整微米结构成功地展示了新颖的离子输运:(1)纳米通道特性依赖的非线性离子电导的转变;(2)离子场效应晶体管。纳米通道电导有两个可区分的非线性区域,分别称为“表面电荷控制”和“几何形状控制”区域,其仅各自的单独忽略情况经常被报道。然而,由于功能性纳米通道制造的困难,通过调整纳米通道特性来实现两个区域之间的转变尚未被报道。此外,三角形纳米通道可以舒适地施加栅极电压,从而可靠地实现场效应离子输运。因此,三角形纳米通道具有关键优势,其异质和可调表面特性可作为一种有效手段,控制和操纵纳米流体系中离子的电迁移。

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